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Few-Layer Graphene-Based Nanofluids with Enhanced Thermal Conductivity

High-quality graphene is an especially promising carbon nanomaterial for developing nanofluids for enhancing heat transfer in fluid circulation systems. We report a complete study on few layer graphene (FLG) based nanofluids, including FLG synthesis, FLG-based nanofluid preparation, and their therma...

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Autores principales: Hamze, Samah, Berrada, Nawal, Cabaleiro, David, Desforges, Alexandre, Ghanbaja, Jaafar, Gleize, Jérôme, Bégin, Dominique, Michaux, Florentin, Maré, Thierry, Vigolo, Brigitte, Estellé, Patrice
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7408275/
https://www.ncbi.nlm.nih.gov/pubmed/32605237
http://dx.doi.org/10.3390/nano10071258
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author Hamze, Samah
Berrada, Nawal
Cabaleiro, David
Desforges, Alexandre
Ghanbaja, Jaafar
Gleize, Jérôme
Bégin, Dominique
Michaux, Florentin
Maré, Thierry
Vigolo, Brigitte
Estellé, Patrice
author_facet Hamze, Samah
Berrada, Nawal
Cabaleiro, David
Desforges, Alexandre
Ghanbaja, Jaafar
Gleize, Jérôme
Bégin, Dominique
Michaux, Florentin
Maré, Thierry
Vigolo, Brigitte
Estellé, Patrice
author_sort Hamze, Samah
collection PubMed
description High-quality graphene is an especially promising carbon nanomaterial for developing nanofluids for enhancing heat transfer in fluid circulation systems. We report a complete study on few layer graphene (FLG) based nanofluids, including FLG synthesis, FLG-based nanofluid preparation, and their thermal conductivity. The FLG sample is synthesized by an original mechanical exfoliation method. The morphological and structural characterization are investigated by both scanning and transmission electron microscopy and Raman spectroscopy. The chosen two-step method involves the use of thee nonionic surfactants (Triton X-100, Pluronic(®) P123, and Gum Arabic), a commercial mixture of water and propylene glycol and a mass content in FLG from 0.05 to 0.5%. The thermal conductivity measurements of the three FLG-based nanofluid series are carried out in the temperature range 283.15–323.15 K by the transient hot-wire method. From a modeling analysis of the nanofluid thermal conductivity behavior, it is finally shown that synergetic effects of FLG nanosheet size and thermal resistance at the FLG interface both have significant impact on the evidenced thermal conductivity enhancement.
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spelling pubmed-74082752020-08-13 Few-Layer Graphene-Based Nanofluids with Enhanced Thermal Conductivity Hamze, Samah Berrada, Nawal Cabaleiro, David Desforges, Alexandre Ghanbaja, Jaafar Gleize, Jérôme Bégin, Dominique Michaux, Florentin Maré, Thierry Vigolo, Brigitte Estellé, Patrice Nanomaterials (Basel) Article High-quality graphene is an especially promising carbon nanomaterial for developing nanofluids for enhancing heat transfer in fluid circulation systems. We report a complete study on few layer graphene (FLG) based nanofluids, including FLG synthesis, FLG-based nanofluid preparation, and their thermal conductivity. The FLG sample is synthesized by an original mechanical exfoliation method. The morphological and structural characterization are investigated by both scanning and transmission electron microscopy and Raman spectroscopy. The chosen two-step method involves the use of thee nonionic surfactants (Triton X-100, Pluronic(®) P123, and Gum Arabic), a commercial mixture of water and propylene glycol and a mass content in FLG from 0.05 to 0.5%. The thermal conductivity measurements of the three FLG-based nanofluid series are carried out in the temperature range 283.15–323.15 K by the transient hot-wire method. From a modeling analysis of the nanofluid thermal conductivity behavior, it is finally shown that synergetic effects of FLG nanosheet size and thermal resistance at the FLG interface both have significant impact on the evidenced thermal conductivity enhancement. MDPI 2020-06-28 /pmc/articles/PMC7408275/ /pubmed/32605237 http://dx.doi.org/10.3390/nano10071258 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Hamze, Samah
Berrada, Nawal
Cabaleiro, David
Desforges, Alexandre
Ghanbaja, Jaafar
Gleize, Jérôme
Bégin, Dominique
Michaux, Florentin
Maré, Thierry
Vigolo, Brigitte
Estellé, Patrice
Few-Layer Graphene-Based Nanofluids with Enhanced Thermal Conductivity
title Few-Layer Graphene-Based Nanofluids with Enhanced Thermal Conductivity
title_full Few-Layer Graphene-Based Nanofluids with Enhanced Thermal Conductivity
title_fullStr Few-Layer Graphene-Based Nanofluids with Enhanced Thermal Conductivity
title_full_unstemmed Few-Layer Graphene-Based Nanofluids with Enhanced Thermal Conductivity
title_short Few-Layer Graphene-Based Nanofluids with Enhanced Thermal Conductivity
title_sort few-layer graphene-based nanofluids with enhanced thermal conductivity
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7408275/
https://www.ncbi.nlm.nih.gov/pubmed/32605237
http://dx.doi.org/10.3390/nano10071258
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